Regeneration of Critical-Sized Mandibular Defects Using 3D-Printed Composite Scaffolds: A Quantitative Evaluation of New Bone Formation in In Vivo Studies

被引:12
作者
Dalfino, Sophia [1 ,2 ,3 ]
Savadori, Paolo [1 ,3 ]
Piazzoni, Marco [1 ,4 ]
Connelly, Stephen Thaddeus [5 ]
Gianni, Aldo Bruno [1 ,3 ]
Del Fabbro, Massimo [1 ,3 ]
Tartaglia, Gianluca Martino [1 ,3 ]
Moroni, Lorenzo [2 ]
机构
[1] Univ Milan, Dept Biomed Surg & Dent Sci, I-20122 Milan, Italy
[2] MERLN Inst Technol Inspired Regenerat Med, Complex Tissue Regenerat Dept, NL-6229 ER Maastricht, Netherlands
[3] Fdn IRCCS CaGranda Osped Maggiore Policlin, I-20122 Milan, Italy
[4] Univ Milan, Dept Phys, I-20133 Milan, Italy
[5] Univ Calif San Francisco, Dept Oral & Maxillofacial Surg, 4150 Clement St, San Francisco, CA 94121 USA
关键词
3D printing; bone tissue engineering; composites; mandibles; maxillofacial defects; polymers; TRICALCIUM PHOSPHATE SCAFFOLD; MESENCHYMAL STEM-CELLS; OSTEOGENIC DIFFERENTIATION; MORPHOGENETIC PROTEINS; RECONSTRUCTION; DELIVERY; VASCULARIZATION; ANGIOGENESIS; LIMITATIONS; CONSTRUCTS;
D O I
10.1002/adhm.202300128
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Mandibular tissue engineering aims to develop synthetic substitutes for the regeneration of critical size defects (CSD) caused by a variety of events, including tumor surgery and post-traumatic resections. Currently, the gold standard clinical treatment of mandibular resections (i.e., autologous fibular flap) has many drawbacks, driving research efforts toward scaffold design and fabrication by additive manufacturing (AM) techniques. Once implanted, the scaffold acts as a support for native tissue and facilitates processes that contribute to its regeneration, such as cells infiltration, matrix deposition and angiogenesis. However, to fulfil these functions, scaffolds must provide bioactivity by mimicking natural properties of the mandible in terms of structure, composition and mechanical behavior. This review aims to present the state of the art of scaffolds made with AM techniques that are specifically employed in mandibular tissue engineering applications. Biomaterials chemical composition and scaffold structural properties are deeply discussed, along with strategies to promote osteogenesis (i.e., delivery of biomolecules, incorporation of stem cells, and approaches to induce vascularization in the constructs). Finally, a comparison of in vivo studies is made by taking into consideration the amount of new bone formation (NB), the CSD dimensions, and the animal model.
引用
收藏
页数:20
相关论文
共 107 条
  • [1] Osteoinduction, osteoconduction and osseointegration
    Albrektsson, T
    Johansson, C
    [J]. EUROPEAN SPINE JOURNAL, 2001, 10 (Suppl 2) : S96 - S101
  • [2] Bone morphogenetic proteins and their antagonists: current and emerging clinical uses
    Ali, Imran H. A.
    Brazil, Derek P.
    [J]. BRITISH JOURNAL OF PHARMACOLOGY, 2014, 171 (15) : 3620 - 3632
  • [3] Development and Assessment of a 3D-Printed Scaffold with rhBMP-2 for an Implant Surgical Guide Stent and Bone Graft Material: A Pilot Animal Study
    Bae, Ji Cheol
    Lee, Jin-Ju
    Shim, Jin-Hyung
    Park, Keun-Ho
    Lee, Jeong-Seok
    Bae, Eun-Bin
    Choi, Jae-Won
    Huh, Jung-Bo
    [J]. MATERIALS, 2017, 10 (12):
  • [4] The scope and sequence of growth factor delivery for vascularized bone tissue regeneration
    Bayer, E. A.
    Gottardi, R.
    Fedorchak, M. V.
    Little, S. R.
    [J]. JOURNAL OF CONTROLLED RELEASE, 2015, 219 : 129 - 140
  • [5] Recent trends in the application of widely used natural and synthetic polymer nanocomposites in bone tissue regeneration
    Bharadwaz, Angshuman
    Jayasuriya, Ambalangodage C.
    [J]. MATERIALS SCIENCE AND ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2020, 110
  • [6] Can bioactivity be tested in vitro with SBF solution?
    Bohner, Marc
    Lemaitre, Jacques
    [J]. BIOMATERIALS, 2009, 30 (12) : 2175 - 2179
  • [7] Boskey Adele L, 2013, Bonekey Rep, V2, P447, DOI 10.1038/bonekey.2013.181
  • [8] 3D-printed scaffold combined to 2D osteoinductive coatings to repair a critical-size mandibular bone defect
    Bouyer, M.
    Garot, C.
    Machillot, P.
    Vollaire, J.
    Fitzpatrick, V
    Morand, S.
    Boutonnat, J.
    Josserand, V
    Bettega, G.
    Picart, C.
    [J]. MATERIALS TODAY BIO, 2021, 11
  • [9] Prefabricated 3D-Printed Tissue-Engineered Bone for Mandibular Reconstruction: A Preclinical Translational Study in Primate
    Cao, Shuai-shuai
    Li, Shu-yi
    Geng, Yuan-ming
    Kapat, Kausik
    Liu, Shang-bin
    Perera, Fidel Hugo
    Li, Qian
    Terheyden, Hendrik
    Wu, Gang
    Che, Yue-juan
    Miranda, Pedro
    Zhou, Miao
    [J]. ACS BIOMATERIALS SCIENCE & ENGINEERING, 2021, 7 (12) : 5727 - 5738
  • [10] Current views on calcium phosphate osteogenicity and the translation into effective bone regeneration strategies
    Chai, Y. C.
    Carlier, A.
    Bolander, J.
    Roberts, S. J.
    Geris, L.
    Schrooten, J.
    Van Oosterwyck, H.
    Luyten, F. P.
    [J]. ACTA BIOMATERIALIA, 2012, 8 (11) : 3876 - 3887